Research Data Scientist-AI/LLM Delivery & Dataset Quality (ID 1407)
Marketscope India
Market Research · 11-50 employees
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About the role
Design, develop, and deploy machine learning models and LLM-based solutions while managing the end-to-end project lifecycle. Collaborate with cross-functional teams to ensure the quality, scalability, and reliability of AI deliverables through rigorous benchmarking and data analysis.
What they look for
Requirements
Requires 2-6+ years of experience in data science, machine learning, or AI, with strong proficiency in Python and ML frameworks. Candidates should have hands-on experience with LLMs, NLP tools, and cloud platforms, along with excellent analytical and communication skills.
Full description
Design, develop, and deploy machine learning models and data science solutions
Work on LLM-based use cases such as prompt engineering, evaluation, finetuning, and model optimization
Build and optimize pipelines for structured and unstructured data
Develop and evaluate applications using LLMs (e.g., text generation, classification, summarization, entity extraction)
Conduct prompt engineering and experimentation to improve model outputs
Support model benchmarking, testing, and performance evaluation
Analyze large datasets to extract actionable insights and patterns
Perform exploratory data analysis (EDA) and feature engineering
Build data visualizations and reports for stakeholders
Participate in client-facing technical discussions and presentations
Translate business requirements into AI/ML solutions and solution architectures
Provide consultative insights based on project learnings and industry trends
Work closely with cross-functional teams (engineering, QA, annotation, delivery leads)
Support end-to-end project lifecycle: requirement gathering → development → deployment → monitoring
Ensure quality, scalability, and reliability of AI deliverables
Requirements
2–6+ years of experience in data science, machine learning, or AI solutions
Experience working on AI/LLM or NLP-related projects is highly preferred
Exposure to client-facing or delivery environments is a strong advantage
Strong proficiency in Python (NumPy, Pandas, Scikit-learn)
Experience with ML frameworks (TensorFlow, PyTorch)
Hands-on experience with LLMs / NLP tools (e.g., Hugging Face, OpenAI APIs, embeddings, RAG frameworks)
Support evaluation and benchmarking methodologies used to determine dataset quality and model performance.
Work with Subject Matter Experts, Quality teams, and Technical Product Managers to investigate potential data or Ground Truth issues.
Solid understanding of:
o Machine learning algorithms
o Data preprocessing and feature engineering
o Model evaluation and performance metrics
Experience with:
o SQL and large-scale datasets
o Cloud platforms (AWS, Azure, or GCP) o Version control (Git)
o Strong hands-on programming capability in Python.
Strong analytical and problem-solving skills
Excellent communication skills (written and verbal)
Ability to explain complex technical concepts to non-technical stakeholders
High attention to detail and quality
Collaborative mindset and adaptability in fast-paced environments
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